Non‐Toxic and Stable Double Perovskite Solar Cells Based on Cs2AgSbX6 Light Harvester: First Principle Calculations‐Aided Theoretical Estimation

Author:

Alla Mohamed1ORCID,Mishra Om P.2,Wakale Girish R.3ORCID,Choudhary Ekta34ORCID,Manjunath Vishesh4ORCID,Hossain Mohammad K.5ORCID,Rouchdi Mustapha1,Fares Boubker1

Affiliation:

1. STCE‐Energy Research Centre (ERC) Faculty of Science Mohammed V University in Rabat Rabat B. P. 1014 Morocco

2. Center for Electric Vehicle and Intelligent Transport Systems Indian Institute of Technology Indore Khandwa Road Simrol 453552 India

3. Department of Physics Indian Institute of Technology Indore Khandwa Road Simrol 453552 India

4. Department of Metallurgical Engineering and Materials Science Indian Institute of Technology Indore Khandwa Road Simrol 453552 India

5. Interdisciplinary Research Center for Renewable Energy and Power Systems (IRC‐REPS) Research Institute King Fahd University of Petroleum & Minerals (KFUPM) Dhahran 31261 Saudi Arabia

Abstract

AbstractOwing to the low long‐term stability and high toxicity, high‐efficiency perovskite solar cells are yet to be commercialized. Therefore, it is imperative to find a reliable and environmentally benign alternative perovskite light harvester. Herein, the study presents a non‐toxic double perovskite light harvester based on Cs2AgSbX6 (where X = Cl, Br, and I) as a substitute, which can render both high efficiency and long‐term durability. The optoelectronic properties of the Cs2AgSbX6 double perovskite light harvesters are investigated with the Cambridge Serial Total Energy Package (CASTEP) software package that is committed to density functional theory (DFT). The bandgap (indirect) tunability of Cs2AgSbX6 double perovskite light harvesters and associated changes in the density of states (DOS) are explored. The obtained results are further loaded as input to the SCAPS‐1D software package to assess the potential of Cs2AgSbX6 double perovskite solar cells. With the FTO/AZnO/Cs2AgSbX6/MoO3/rear contact device structure, the thickness and bulk defect density of the Cs2AgSbX6 light harvester have superior control over the performance of the double perovskite solar cells. The highest theoretical efficiency of ≈29.9% is estimated for the Cs2AgSbI6 light harvester. Additionally, the effectiveness of several prospective back electrodes is examined.

Publisher

Wiley

Subject

Multidisciplinary,Modeling and Simulation,Numerical Analysis,Statistics and Probability

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